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Ballet Pose Recognition: A Bag-of-Words Support Vector Machine Model for the Dance Training Environment

机译:芭蕾姿势识别:舞蹈训练环境的一袋支持向量机模型

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Serious dance students are always looking for ways in which they can improve their technique by practising alone at home or a studio by using a mirror for feedback. The problem these students face is that for many ballet postures it is difficult to analyze one's own faults. By not having guidance regarding proper positional alignment, dancers risk developing injuries and bad habits. The proposed solution is a system which recognizes the ballet position being performed by a dancer. After recognition, this research aims to work towards providing the necessary correction as feedback. The results for recognition in the system, using a Bag-of-Words approach to a Support Vector Machine classifier, showed an accuracy of 59.6%. Multiple implementations are produced and assessed in this paper. It is clearly found that the approach is feasible, however, work for improving the accuracy is required. Recommendations to improve effective pose recognition for future work are therefore discussed.
机译:严重的舞蹈学生总是在寻找他们可以通过使用镜子来在家里或工作室来改善他们的技术来改善他们的技术。这些学生面临的问题是,对于许多芭蕾舞姿势,很难分析自己的故障。通过没有关于适当的位置对齐,舞者风险造成伤害和坏习惯。所提出的解决方案是识别舞者执行的芭蕾位置的系统。承认后,该研究旨在为反馈提供必要的纠正。在系统中识别的结果,使用与支持向量机分类器的单词方法进行袋式方法,显示精度为59.6%。本文生产和评估多种实施方式。清楚地发现,这种方法是可行的,但是,需要改进准确性的工作。因此,讨论了提高有效姿势认可的建议。

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